Title :
Simulating T-wave parameters of local extracellular electrograms with a whole-heart bidomain reaction-diffusion model: Size matters!
Author :
Potse, M. ; Coronel, R. ; Opthof, T. ; Vinet, A.
Author_Institution :
Hopital du Sacre-Coeur de Montreal, Montreal
Abstract :
As a measure of local repolarization time (TR), the instant of maximum slope (Tup) of the T wave in the local unipolar electrogram is commonly used. Measurement of Tup can be difficult, especially in positive T waves. These difficulties have led some researchers to propose the instant of maximum downslope (Tdown) as a marker of TR when the T wave is positive. To improve understanding of T-wave parameters, we simulated electrograms with a bidomain model of the human heart. To test T-wave parameters, we compared them to TR determined from the local membrane potential. We propose a simple model of the electrogram, which we validated by comparison to the bidomain model. With the simple model, it is straightforward to show that the sign of the T wave is almost uniquely determined by TR. We then used the bidomain model to simulate the effects of a variety of pathologies and technical difficulties, which the simple model could not account for. Generally, Tup was a much better estimate for TR than Tdown. Regional fibrosis could attenuate local electrogram components and reduce accuracy of Tup as a marker for TR. In fibrotic tissue, Tdown was not related to TR at all. This investigation of electrogram slopes required the simulation of extracellular potentials with about 100 times more precision than needed for simulation of visually acceptable waveforms alone. This requirement is more difficult to meet in larger models, but it was actually possible for a human-heart model with 60 million nodes. By sacrificing some spatial resolution, we kept the computational requirements within acceptable limits for multiple simulations.
Keywords :
bioelectric potentials; biomedical measurement; biomembranes; cellular biophysics; electrocardiography; physiological models; reaction-diffusion systems; T-wave parameters; fibrotic tissue; human heart model; local extracellular unipolar electrograms; local membrane potential; local repolarization time; regional fibrosis; spatial resolution; whole-heart bidomain reaction-diffusion model; Biomembranes; Computational modeling; Extracellular; Heart; Humans; Pathology; Spatial resolution; Testing; Time measurement; Virtual manufacturing; Computer Simulation; Electrocardiography; Heart; Humans; Models, Biological; Myocytes, Cardiac;
Conference_Titel :
Engineering in Medicine and Biology Society, 2007. EMBS 2007. 29th Annual International Conference of the IEEE
Conference_Location :
Lyon
Print_ISBN :
978-1-4244-0787-3
DOI :
10.1109/IEMBS.2007.4353883